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I have created a simple Windows Form which opens up as a Properties window after a button click, now as you know, a Properties window should only be opened once, and since I'm a beginner, I'm dependent on your advice: How do I make this window only appear once? here is the little Code Snippet (this is not my main class - if it needs to be applied on the button method, i could also do it there)

public partial class EinstellungenFenster : Form
{
    public EinstellungenFenster()
    {
        InitializeComponent();
        Text = "Outlook Add-in Einstellungen";

    }
}

and here the Button Method i use:

        private void FensterOeffnen(object sender, IRibbonControl control, bool pressed)
    {
        EinstellungenFenster fenster = new EinstellungenFenster();
        fenster.Show();

    }
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3 Answers 3

up vote 2 down vote accepted

instead of fenster.Show() use fenster.ShowDialog(), this will make the form modal, meaning that no other parent dialogs can be used until it is closed

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Thank you very much –  gbbb Apr 11 '13 at 8:43

Suppose if we are calling a form from a menu click on MDI form, then we need to create the instance declaration of that form at top level like this:

    Form1 fm = null;

Then we need to define the menu click event to call the Form1 as follows:

private void form1ToolStripMenuItem_Click(object sender, EventArgs e)
{
    if (fm == null|| fm.Text=="")
    {
        fm = new Form1();              
        fm.MdiParent = this;
        fm.Dock = DockStyle.Fill;
        fm.Show();
    }
    else if (CheckOpened(fm.Text))
    {
        fm.WindowState = FormWindowState.Normal;
        fm.Dock = DockStyle.Fill;
        fm.Show();
        fm.Focus();               
    }                   
}

The CheckOpened defined to check the Form1 is already opened or not: private bool CheckOpened(string name) { FormCollection fc = Application.OpenForms;

    foreach (Form frm in fc)
    {
        if (frm.Text == name)
        {
            return true; 
        }
    }
    return false;
}

Hope this will solve the issues on creating multiple instance of a form also getting focus to the Form1 on menu click if it is already opened or minimized.

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If you want to block the user from doing anything else whilst the window is up i.e. forcing them to close it before they move on, call ShowDialog() instead of Show(). Otherwise, my advice would be to maintain a private field and detect whether the form has already been created/shown on click and just flash the form to bring it to the users attention.

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That was better than what i asked for, thanks I'll take your answer in 6 minutes. and Sayse is right, ShowModal() doesn't work, it has to be ShowDialog(). –  gbbb Apr 11 '13 at 8:42
    
Oops... I primarily use Delphi in my workplace, old habits! Updated. –  James Apr 11 '13 at 8:44
    
I took Sayse Because he had less points, but thanks –  gbbb Apr 11 '13 at 8:54

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